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RAG Agent with ChromaDB and Tavily

This repository contains a simple RAG agent that uses ChromaDB as a local vector store and Tavily for web search. The agent automatically selects the appropriate source (local knowledge base or the web) based on the query.

Structure

  • vectorstore.py utilities for creating and loading the vector store.
  • tools.py LangChain tools for local and web search.
  • agent.py agent definition with routing logic.
  • main.py interactive CLI.
  • init_db.py helper script to load documents from documents/ into the vector store.
  • requirements.txt dependencies.
  • documents/ folder with sample .txt/.md files.

Usage

# Install dependencies
pip install -r requirements.txt

# Load documents into the vector store
python init_db.py

# Run the chat interface
python main.py

Environment

  • TAVILY_API_KEY required for web search.
  • OLLAMA_BASE_URL optional, defaults to http://localhost:11434.
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